Method and apparatus for controlling a dc-DC converter change the switching frequency of the switching devices and the on-off ratio of the switching devices. The on-off ratio can be changed in response to the output voltage and the switching frequency can be changed in response to the input voltage supplied by the dc power supply. Alternatively, the switching frequency can be changed while the on-off ratio is fixed at a certain value, and the on-off ratio can be changed while the switching frequency is fixed at a predetermined value after the switching frequency has reached the predetermined value, thereby preventing the switching frequency from exceeding the predetermined value.
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1. A method of controlling a dc-DC converter including a first series circuit including two switching devices connected between a positive terminal and a negative terminal of a dc power supply that supplies a dc input voltage, and a second series circuit including one or more capacitors and a primary winding of a transformer connected to one of the switching devices, the dc-DC converter switching on and off the switching devices, whereby to generate positive and negative voltages across a secondary winding of the transformer, and the dc-DC converter conducting half-wave rectification or full-wave rectification of the positive and negative voltages generated across the secondary winding of the transformer, thereby to obtain a dc output voltage, comprising:
changing the switching frequency of the switching devices; and
changing the on-off ratio of the switching devices.
4. A dc-DC converter comprising:
a first series circuit including two switching devices connected between a positive terminal and a negative terminal of a dc power supply that supplies a dc input voltage;
a second series circuit including one or more capacitors and a primary winding of a transformer connected to one of the switching devices;
switching frequency changing means for changing a switching frequency of the to switching devices; and
on-off ratio changing means for changing a on-off ratio of the switching devices;
wherein switching of the on and off the switching devices generates positive and negative voltages across a secondary winding of the transformer; and
wherein the dc-DC converter conducts half-wave rectification or full-wave rectification of the positive and negative voltages generated across the secondary winding of the transformer thereby to generate a dc output voltage.
2. The method according to
3. The method according to
5. The dc-DC converter as claimed in
6. The dc-DC converter as claimed in
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The present invention relates to a method and apparatus for controlling a DC-DC converter having a half-bridge configuration.
As described above, the conventional DC-DC converter shown in
In the conventional DC-DC converter, the exciting inductance of the transformer should be low enough to prevent the switching frequency from increasing greatly.
As a result of reducing the exciting inductance of the transformer to prevent the switching frequency from increasing greatly under the light load condition, high exciting currents flow into the transformer under the rated load condition as well as under the light load condition as the currents IQ1 and IQ2 in
In view of the foregoing, it would be desirable to provide a method and apparatus for controlling a DC-DC converter, that facilitates preventing the switching frequency from increasing under a light load condition and improving the conversion efficiency of the DC-DC converter.
The invention provides a method and apparatus for controlling a DC-DC converter including a first series circuit including two switching devices connected between a positive terminal and a negative terminal of a DC power supply that supplies a DC input voltage, and a second series circuit including one or more capacitors and the primary winding of a transformer connected to one of the switching devices, the DC-DC converter switching on and off the switching devices to generate positive and negative voltages across the secondary winding of the transformer, and the DC-DC converter conducting half-wave rectification or full-wave rectification of the positive and negative voltages generated across the secondary winding of the transformer to obtain a DC output voltage, the method including: changing the switching frequency and an on-off ratio of the switching devices.
The on-off ratio is preferably changed corresponding to the output voltage and the switching frequency corresponding to the voltage of the DC power supply.
Alternatively, the switching frequency is mainly changed while the on-off ratio is fixed at a certain value, and the on-off ratio is changed while the switching frequency is fixed at a predetermined value after the switching frequency has reached the predetermined value to prevent the switching frequency from exceeding the predetermined value toward the higher side.
The invention will be described with reference to certain preferred embodiments thereof and the accompanying drawings, wherein:
Now the invention will be described in detail hereinafter with reference to the accompanied drawing figures which illustrate the preferred embodiments of the invention. Throughout these figures, the same reference numerals and symbols as used in
In the circuit described above, the oscillation frequency of the triangular wave signal generated by the triangular wave generation circuit 14, which is the switching frequency FS, is changed corresponding to the input voltage Ed fed from the DC power supply and detected by the second voltage detector circuit 17. The oscillation frequencies of the triangular wave signal for the input voltages Ed of 100 V and 400 V are made to be different from each other. At the same time, the on-off ratio D of the MOSFETs 1, 2 is adjusted (changed) as described in
The circuit configured as described in
Since the switching frequency is prevented from increasing greatly and the exciting current of the transformer is reduced according to the invention even when the exciting inductance of the transformer is higher than the conventional exciting inductance, loses caused by the reactive current is reduced. According to the invention, the conversion efficiency of the DC-DC converter is improved especially under a light load condition.
The invention has been described with reference to certain preferred embodiments thereof. It will be understood by those skilled in the art that modifications and variations are possible within the scope of the appended claims.
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
6088243, | Mar 10 1998 | Fidelix Y.K. | Power supply apparatus |
6483722, | Nov 10 2000 | FUJI ELECTRIC CO , LTD | DC/DC converter and control method thereof |
JP7123706, |
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